Abraham G. Beyene, Gozde S. Demirer, Markita P. Landry
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引用次数: 24
Abstract
Molecular recognition of biological analytes with optical nanosensors provides both spatial and temporal biochemical information. A recently developed sensing platform exploits near-infrared fluorescent single-wall carbon nanotubes combined with electrostatically pinned heteropolymers to yield a synthetic molecular recognition technique that is maximally transparent through biological matter. This molecular recognition technique is known as corona phase molecular recognition (CoPhMoRe). In CoPhMoRe, the specificity of a folded polymer toward an analyte does not arise from a pre-existing polymer-analyte chemical affinity. Rather, specificity is conferred through conformational changes undergone by a polymer that is pinned to the surface of a nanoparticle in the presence of an analyte and the subsequent modifications in fluorescence readout of the nanoparticles. The protocols in this article describe a novel single-molecule microscopy tool (near-infrared fluorescence and total internal reflection fluorescence [nIRF TIRF] hybrid microscope) to visualize the CoPhMoRe recognition process, enabling a better understanding of synthetic molecular recognition. We describe this requisite microscope for simultaneous single-molecule visualization of optical molecular recognition and signal transduction. We elaborate on the general procedures for synthesizing and identifying single-walled carbon nanotube-based sensors that employ CoPhMoRe via two biologically relevant examples of single-molecule recognition for the hormone estradiol and the neurotransmitter dopamine. © 2016 by John Wiley & Sons, Inc.
用于生物分析物检测的纳米颗粒模板分子识别平台
利用光学纳米传感器对生物分析物进行分子识别,可提供时空生化信息。最近开发的传感平台利用近红外荧光单壁碳纳米管与静电钉住的杂多聚合物相结合,产生了一种通过生物物质最大程度透明的合成分子识别技术。这种分子识别技术被称为电晕相分子识别(CoPhMoRe)。在CoPhMoRe中,折叠聚合物对分析物的特异性并不源于先前存在的聚合物与分析物的化学亲和力。更确切地说,特异性是通过在分析物存在的情况下将聚合物固定在纳米颗粒表面所经历的构象变化以及随后纳米颗粒荧光读数的修饰来授予的。本文中的协议描述了一种新的单分子显微镜工具(近红外荧光和全内反射荧光[nIRF TIRF]混合显微镜)来可视化CoPhMoRe识别过程,从而更好地理解合成分子识别。我们描述了这种必要的显微镜,用于同时进行光学分子识别和信号转导的单分子可视化。我们通过对激素雌二醇和神经递质多巴胺的单分子识别的两个生物学相关的例子,详细阐述了合成和识别采用CoPhMoRe的单壁碳纳米管传感器的一般程序。©2016 by John Wiley &儿子,Inc。
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